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RAPID: Extreme water use patterns and their impact on the microbial and chemical ecology of drinking water.

RAPID: Extreme water use patterns and their impact on the microbial and chemical ecology of drinking water.
RAPID:极端用水模式及其对饮用水微生物和化学生态的影响。
批准号:
2029850
负责人:
Kelsey Pieper
金额:
$19.93万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-05-15 至 2022-04-30

项目摘要

项目成果

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中文摘要
翻译
到目前为止,COVID-19大流行在美国已经感染了100多万人。许多城市已经实施了居家令和关闭非必要企业的命令,以限制COVID-19的传播。这些干预措施的一个意想不到的影响是,饮用水的使用地点和数量发生了巨大变化。例如,商业建筑的用水量减少了,而家庭用水却增加了。对于人口密集城市的用水变化如何影响饮用水质量,以及必须采取什么行动来降低任何潜在风险,人们的理解有限。用水方式的改变会改变系统中存在的化学物质或有害生物的种类和数量,从而影响水质和公众健康。RAPID项目的主要目标是了解住宅和商业场所用水模式的急剧变化对饮用水质量的影响。在大流行期间和之后,将监测波士顿市多个住宅和商业地点的饮用水质量。这项研究的结果将对covid -19后的恢复产生直接影响。研究结果为在用水模式在短时间内急剧变化的未来情景中保护公共卫生和水基础设施提供了信息。为应对全球COVID-19大流行,居家咨询和所有非必要业务的相关停止极大地改变了美国各地的饮用水使用模式。这些变化的一个意想不到的后果是不用水可能引起公共卫生问题。具体而言,商业建筑的用水量急剧减少,导致长期停滞和消毒能力丧失。由于潜在的缺氧/厌氧条件,停滞会导致含有机会性病原体的管道中生物膜的生长或腐蚀。与此同时,家庭用水大大增加,这也可能影响建筑管道中的生物膜。该RAPID项目的目标是确定(1)用水模式的变化对饮用水微生物和化学生态的影响;(2)不同用水方式对水体微生物群落生物膜生长的影响。研究小组将利用正在进行的波士顿市饮用水化学和综合宏基因组监测工作来实现项目目标。在短期内,这项研究将产生急需的数据和见解,为重新调试策略提供信息。这在短期内尤为重要,因为患有COVID-19或正在康复的个人可能会通过饮用水接触到机会性呼吸道病原体。研究结果还将为公共卫生干预期间未用于大型商业建筑的冲厕水和消毒水提供指导。从长远来看,在一个全面的饮用水系统中比较用水模式的极端变化对饮用水的化学和微生物生态的影响的能力有可能大大提高对饮用水生物稳定性的了解。因此,本研究的结果将对covid -19后的恢复产生直接影响,同时也将利用当前形势在饮用水质量管理方面取得持久进展。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
The COVID-19 pandemic has infected over a million people in the United States to date. Stay-at-home orders and the closing of non-essential businesses have been implemented in many municipalities to limit the spread of COVID-19. An unintentional impact of these interventions is a drastic change in where and how much drinking water is used. For example, water use in commercial buildings has decreased while water use in homes has increased. There is limited understanding of how changes in water use across densely populated cities impact drinking water quality, and what actions must be taken to lower any potential risks. Changes in water use can change the type and number of chemicals or harmful organisms present in the system, affecting water quality and public health. The primary goal of this RAPID project is to understand the effect of drastic changes in water use patterns across residential and commercial locations on the quality of drinking water. Drinking water quality will be monitored at multiple residential and commercial locations in the City of Boston, during and after the pandemic. Results from this study will have a direct impact on post-COVID-19 recovery. Results inform efforts to protect public health and water infrastructure in future scenarios where water use patterns change drastically over short time periods.Stay-at-home advisories and related cessation of all non-essential businesses in response to the global COVID-19 pandemic have dramatically altered drinking water use patterns across the United States. An unintended consequence of these changes is the potential public health concerns of water non-use. Specifically, water use in commercial buildings has decreased dramatically, leading to extended stagnation and loss of disinfection capacity. Stagnation can lead to the growth of biofilms in plumbing containing opportunistic pathogens or corrosion due to the potential for anoxic/anaerobic conditions. At the same time, water use in homes has increased greatly which may also affect biofilms in building plumbing. The objectives of this RAPID project are to determine the impact of (1) changes in water use patterns on the microbial and chemical ecology of drinking water; and (2) growth of biofilms on the bulk water microbial community as a function of varying water use patterns. The research team will leverage ongoing efforts at chemical and integrated metagenomic monitoring of drinking water in the City of Boston to address the project objectives. In the short-term, this research will generate much-needed data and insights to inform recommissioning strategies. This is particularly important in the short-term as the individuals suffering or recovering from COVID-19 may be exposed to opportunistic respiratory pathogens from drinking water. Results will also inform guidance for water utilities on flushing and disinfecting water that was not used in large commercial buildings during the public heath interventions. In the long term, the ability to compare the impact of extreme changes in water use patterns on the chemical and microbial ecology of drinking water in a full-scale drinking water system has the potential to significantly enhance understanding of the biological stability of drinking water. Thus, results from this study will have a direct impact on post-COVID-19 recovery while also leveraging the current situation to provide lasting advances in drinking water quality management.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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